质子
钙钛矿(结构)
单层
材料科学
辐照
降级(电信)
光电子学
化学物理
化学工程
聚合物
爆炸物
空间环境
辐射
分子工程
中子
光化学
辐射损伤
太阳能
纳米技术
烷基
作者
Hongkai Zhang,Junfeng Chen,Jianqi Sun,Haotian Hu,Xinxin Yan,Wenjie Peng,Kuo Wang,Yue Wang,Yifan Zheng,Wei Shi,Bin Wei,Jianhui Bin,Yuchuan Shao
摘要
The explosive growth of commercial aerospace and space computing demands lightweight, low-cost flexible solar wings, positioning flexible perovskite solar cells (FPSCs) as a key enabling technology. However, while the radiation hardness of perovskite absorbers is well-established, the degradation mechanism of organic hole transport layers (HTLs) under space radiation remains unexplored and represents a critical bottleneck. Here, we investigate the proton irradiation tolerance of self-assembled monolayers (SAMs) as HTLs with varying saturated alkyl chain lengths in inverted FPSCs under simulated low Earth orbit conditions. Following proton irradiation, 6PACz films exhibited the highest retention of surface morphology, minimal C–N bond cleavage, and reduced ionization damage among the investigated SAMs. As a result, 6PACz-based devices exhibited superior proton radiation hardness, retaining 90% of their initial efficiency (approximately 24%) after proton exposure. This exceptional stability is attributed to the maintenance of low interfacial defect densities and favorable energy level alignment. Our findings identify molecular chain engineering as a decisive strategy for eliminating the organic-layer bottleneck in next-generation space photovoltaics.
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